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水动力逐层组装可转移酶导电纳米网络,用于基于酶贴剂的电化学生物传感器接触印刷。

Hydrodynamic Layer-by-Layer Assembly of Transferable Enzymatic Conductive Nanonetworks for Enzyme-Sticker-Based Contact Printing of Electrochemical Biosensors.

机构信息

Department of Fine Chemistry , Seoul National University of Science and Technology , Seoul 01811 , Republic of Korea.

Post-Silicon Semiconductor Institute , Korea Institute of Science and Technology , Seoul 02792 , Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2018 Oct 24;10(42):36267-36274. doi: 10.1021/acsami.8b13070. Epub 2018 Oct 11.

Abstract

Realizing high-performance electrochemical biosensors in a simple contact-printing-based approach significantly increases the applicability of integrated flexible biosensors. Herein, an enzyme-sticker-based approach that enables flexible and multielectrochemical sensors via simple contact-transfer printing is reported. The enzyme sticker consists of an enzymatic conductive network film and a polymeric support. The enzyme-incorporated nanostructured conductive network showing an efficient electrical coupling was assembled via the hydrodynamic layer-by-layer assembly of redox enzymes, polyelectrolytes, single-walled carbon nanotubes, and a biological glue material, M13 phage. The enzymatic conductive network on a polymeric membrane support was facilely wet contact-transfer printed onto integrated electrode systems by exploiting varying degrees of hydrophilicity displayed by the enzymatic electronic film, polymeric support, and receiving electrodes of the sensor system. The glucose sensors fabricated using the enzyme sticker detected glucose at a concentration of as low as 35 μM and showed high selectivity and stability. Furthermore, a flexible dual-sensor array capable of detecting both glucose and lactate was demonstrated using the versatile enzyme sticker concept. This work presents a new route toward assembling and integrating hybrid nanomaterials with efficient electrochemical coupling for high-performance biosensors and health-monitoring devices as well as for emerging bioelectronics and electrochemical devices.

摘要

在简单的接触印刷方法基础上实现高性能电化学生物传感器,可显著提高集成式柔性生物传感器的适用性。本文报道了一种基于酶贴纸的方法,通过简单的接触转移印刷即可实现灵活的多电化学生物传感器。酶贴纸由酶导电网络薄膜和聚合物支撑体组成。通过将氧化还原酶、聚电解质、单壁碳纳米管和生物胶材料 M13 噬菌体进行水动力层层组装,构建了具有高效电子偶联作用的含酶纳米结构导电网络。利用酶电子膜、聚合物支撑体和传感器系统的接收电极所表现出的不同亲水性,可将酶导电网络在聚合物膜支撑体上进行湿接触转移印刷到集成电极系统上。使用酶贴纸制作的葡萄糖传感器可在低至 35 μM 的浓度下检测葡萄糖,并表现出高选择性和稳定性。此外,还利用多功能酶贴纸概念展示了一种能够同时检测葡萄糖和乳酸的柔性双传感器阵列。这项工作为组装和集成具有高效电化学偶联作用的混合纳米材料提供了一种新途径,可用于高性能生物传感器和健康监测设备,以及新兴的生物电子学和电化学设备。

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